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Cytoplasmic membrane of a sensitive yeast is a primary target for Cryptococcus humicola mycocidal compound (microcin)

机译:敏感酵母的细胞质膜是Hryptocococus humicola杀真菌化合物(微霉素)的主要靶标

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摘要

A basidiomycetous yeast strain, Cryptococcus humicola 9-6, secretes a mycocidal compound (microcin) which is lethal for many yeasts. In this study a new protocol for microcin purification has been developed, and TLC-purity product was obtained. Using fluorescein as a pH-sensitive probe it was found that microcin treatment of Cryptococcus terreus, a model microcin-sensitive yeast, immediately caused transient alkalization followed by acidification of the cells' cytoplasm. Upon completion of this process, endogenous respiration as well as activity of unspecific esterases were inhibited, and alterations in cell wall and/or capsule started. Microcin was shown to make the cells leaky for intracellular ATP. The mycocidal effect of microcin did not depend on the cell cycle phase of Cr. terreus. Based on these observations and on electrical measurements on planar phospholipid bilayers, which indicated a microcin-induced membrane permeabilization, it is suggested that the cytoplasmic membrane of the sensitive yeast is a primary target of microcin action. The conjectured mode of microcin action involves gradual increase of the cytoplasmic membrane's unspecific permeability. Intracellular ion homeostasis changes induced by microcin are considered to be the main cause of enzyme inhibition, alterations in the outer layers of the cell envelope and, finally, division arrest.
机译:担子菌酵母菌株Humicola Cryptococcus 9-6分泌一种杀真菌化合物(微素),该化合物对许多酵母具有致命性。在这项研究中,已经开发了用于微霉素纯化的新方案,并获得了TLC纯度产品。使用荧光素作为pH敏感探针,发现微霉素对模型隐球菌敏感酵母Cryptococcus terreus的处理立即引起瞬时碱化,随后酸化了细胞质。该过程完成后,内源性呼吸作用以及非特异性酯酶的活性均被抑制,细胞壁和/或胶囊开始发生变化。证明微霉素使细胞泄漏细胞内ATP。微霉素的杀菌作用不取决于Cr的细胞周期阶段。地雷基于这些观察结果和在平面磷脂双层上的电学测量,这表明微素诱导的膜透化,表明敏感酵母的细胞质膜是微素作用的主要靶标。微素作用的推测模式涉及细胞质膜非特异性通透性的逐渐增加。微霉素诱导的细胞内离子稳态变化被认为是酶抑制,细胞被膜外层改变以及最终分裂停滞的主要原因。

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